ART
BEAUTY & WELLNESS
CRAFT
CULTURE & HISTORY
ENTERTAINMENT
ENVIRONMENT
FOOD & DRINKS
REVERSE ENGINEERING
SCIENCES
SPORTS
TECHNOLOGY
WEARABLES
Parsons Steam Turbine
Martin

Ṣẹ́dá nipasẹ̀

Martin

20. Oṣù Kẹjọ 2026NO
0
0
0
0
0

Parsons Steam Turbine

The machine that made electricity cheap. A piston engine converts steam pressure into a shove, then has to stop the piston and reverse it thousands of times a minute, which wastes energy and limits speed. Charles Parsons built a turbine instead — steam flows continuously through row after row of small blades, giving up a little of its energy at each row, so nothing reciprocates and nothing has to be reversed. His 1884 machine drove a dynamo directly at 18,000 rpm. He announced it to the world in 1897 by driving his unauthorised launch Turbinia through the Royal Navy fleet review at Spithead at 34 knots, faster than anything sent to catch her. Within two decades turbines had displaced reciprocating engines in power stations and in ships, and virtually all the world's thermal and nuclear electricity is still generated by their descendants.
Àárín
1 hour

Ìlànà

1

One stage cannot do it

See the problem Parsons solved before seeing his solution.

  1. Fit a single row of vanes on a shaft and drive it with a jet of air.
  2. Note it spins fast but takes only a fraction of the energy from the stream.
  3. Air leaves at high speed — that leftover speed is wasted energy.
To extract most of the energy in one row, the blades would have to move at roughly half the jet speed. For steam that means impossible tip speeds — the rotor would tear itself apart. This is precisely why single-stage turbines were a dead end.

Materials for this step:

Baltic Birch Plywood (1/8 inch, 12x12, 10-Pack)Baltic Birch Plywood (1/8 inch, 12x12, 10-Pack)1 àkópọ̀
Ball Bearing - Flanged (6,35 mm Bore, 1,27 cm OD)Ball Bearing - Flanged (6,35 mm Bore, 1,27 cm OD)2 ẹyọ
2

Stage it

Take a little energy many times instead of all of it once.

  1. Mount several rotor rows along one shaft.
  2. Between each pair, fix a row of stationary vanes attached to the casing.
  3. Angle the fixed rows to redirect the flow into the next moving row.
The fixed rows are not padding — without them the flow leaves one rotor row spinning the wrong way to drive the next. Alternating moving and fixed rows is the whole architecture, and it lets the rotor turn at a sane speed while still extracting most of the energy.
3

Let the blades grow

Steam expands as it gives up pressure, so it needs more room at every stage.

  1. Make each successive rotor row larger in blade height than the last.
  2. Widen the casing to match.
A real turbine's blades grow from a few centimetres at the high-pressure end to over a metre at the low-pressure end. Same mass flow, much lower density, so much more area is needed — which is why a turbine rotor has that distinctive stepped cone shape.
4

Run it and measure

Drive it with compressed air — never with steam on a model.

  1. Feed air through the first stage at steady pressure.
  2. Count rotor speed with a marked blade and a timer, or a tachometer.
  3. Load the shaft by lifting a small mass and measure the work done per second.
Add stages one at a time and re-measure. Output should rise with each added stage while speed stays roughly similar — that is Parsons's principle showing up as numbers on your bench.

Materials for this step:

StopwatchStopwatch1 ẹyọ
Digital Kitchen ScaleDigital Kitchen Scale1 ẹyọ
5

History and context

Charles Algernon Parsons, youngest son of the Earl of Rosse, built his first multi-stage reaction turbine in 1884 while a junior partner at Clarke, Chapman on Tyneside. It produced about 7.5 kW at 18,000 rpm driving a dynamo he also had to design, because no existing generator could run at that speed.

The Turbinia demonstration in 1897 is the most famous piece of engineering publicity of the century. Parsons could not get the Admiralty to take turbines seriously, so he built a 30-metre launch, fitted it with turbines driving three shafts with three propellers each, and drove it uninvited through the lines at Queen Victoria's Diamond Jubilee fleet review at Spithead. At about 34 knots she outran the picket boat sent to stop her. The Royal Navy ordered turbine destroyers shortly afterwards.

The propeller problem he had to solve first is a good example of an unexpected obstacle. Early Turbinia trials were badly disappointing because the propellers were cavitating — water vaporising on the blade faces and destroying thrust. Parsons built an early cavitation-observation apparatus to study it and fixed the problem by using more propellers of smaller pitch. The same phenomenon damages water turbine runners.

Where it went: turbines took over power generation because they scale up far better than piston engines and deliver smooth rotary motion straight to a generator. Almost all coal, gas, nuclear, geothermal and concentrated-solar electricity is generated by putting steam through a machine descended from the 1884 turbine. In ships, gearing solved the mismatch between fast turbines and slow propellers, and Parsons developed that too.

Àwọn ohun-èlò

4
Estimated Total
$6.00

Blueprint tó jọra

Àwọn blueprint wọ̀nyí pín ìmọ̀ — ọ̀nà, ohun-èlò tàbí ìlànà

CC0 Àgbègbè Gbogbogbò

Blueprint yìí ti jáde lábẹ́ CC0. O lè ṣe àdàkọ, yí padà, pín, àti lò láìsí ìyọ̀ǹda.

Ṣàtìlẹ́yìn Olùṣẹ́dá nípa rírà àwọn ọjà nipasẹ̀ Blueprint wọn Ẹ̀san Olùṣẹ́dá tí àwọn Olùtajà gbé kalẹ̀, tàbí ṣẹ̀dá àtúnṣe tuntun ti Blueprint yìí kí o sì fi sínú Blueprint rẹ gẹ́gẹ́ bí ìsopọ̀ láti pín owó-wíwọlé.

Ìfọ̀rọ̀wérọ̀

(0)

Wọlé láti dara pọ̀ mọ́ ìfọ̀rọ̀wérọ̀

Loading comments...